Quantized conductance of a suspended graphene nanoconstriction
arXiv:1102.0434 · doi:10.1038/nphys2009
Abstract
A yet unexplored area in graphene electronics is the field of quantum ballistic transport through graphene nanostructures. Recent developments in the preparation of high mobility graphene are expected to lead to the experimental verification and/or discovery of many new quantum mechanical effects in this field. Examples are effects due to specific graphene edges, such as spin polarization at zigzag edges of a graphene nanoribbon and the use of the valley degree of freedom in the field of graphene valleytronics8. As a first step in this direction we present the observation of quantized conductance at integer multiples of 2e^2/h at zero magnetic field and 4.2 K temperature in a high mobility suspended graphene ballistic nanoconstriction. This quantization evolves into the typical quantum Hall effect for graphene at magnetic fields above 60mT. Voltage bias spectroscopy reveals an energy spacing of 8 meV between the first two subbands. A pronounced feature at 0.6 2e^2/h present at a magnetic field as low as ~0.2T resembles the "0.7 anomaly" observed in quantum point contacts in a GaAs-AlGaAs two dimensional electron gas, having a possible origin in electron-electron interactions.
Main paper + supplementary information. Accepted for publication in Nature Physics
References in corpus (14)
- The electronic properties of graphene
- Ultrahigh electron mobility in suspended graphene
- Boron nitride substrates for high-quality graphene electronics
- Half-Metallic Graphene Nanoribbons
- Suspended Graphene: a bridge to the Dirac point
- Valley filter and valley valve in graphene
- Electronic States of Graphene Nanoribbons
- Current-induced cleaning of graphene
- Conductance quantization and transport gap in disordered graphene nanoribbons
- Quantum conductance of graphene nanoribbons with edge defects
- Conductance Quantization in Graphene Nanoribbons
- Coherent transport in graphene nanoconstrictions
- Large yield production of high mobility freely suspended graphene electronic devices on a PMGI based organic polymer
- WKB analysis of edge states in graphene in a strong magnetic field